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Johengen, L.

Publications and source records attributed to Johengen, L..

2 recordsLinked to original sources

Mismatch repair MLH complexes make distinct contributions to post-replicative mismatch repair versus trinucleotide repeat expansions

Mismatch repair (MMR) is a highly conserved DNA repair pathway that promotes genome stability by directing the repair of errors in DNA replication. In Saccharomyces cerevisiae, MMR is initiated by either Msh2-Msh3 or Msh2-Msh6, via recognition of insertion deletion loops (IDLs; up to [~] 17 nucleotides) and misincorporation events, respectively. Both complexes recognize and bind small (1-2 nucleotide) IDLs. Once bound, MSH complexes recruit one or more downstream MLH complexes to continue repair: Mlh1-Pms1, Mlh1-Mlh2 and/or Mlh1-Mlh3. Msh2-Msh3 also promotes CAG trinucleotide repeat (TNR) expansions through specific DNA-binding to TNR DNA structures, followed by recruitment of MLH complexes. These expansions lead to genome instability that causes neurodegenerative diseases such as Huntingtons Disease in humans. Here, we defined a hierarchy of MLH function in these Msh2-Msh3-mediated pathways in vivo in S. cerevisiae. We determined that Mlh1-Pms1 is the primary MLH complex required in Msh2-Msh3-mediated MMR. In contrast, all three MLH complexes were required to promote CAG expansions, with loss of Mlh1-Pms1 or Mlh1-Mlh2 exhibiting the strongest effects. Mutations in PMS1 and MLH3 were synergistic. We propose a model in which Mlh1-Pms1 is primarily responsible for "appropriate" Msh2-Msh3-mediated MMR, while all three MLH complexes collaborate specifically in the presence of CAG structure, to promote a "pathogenic" Msh2-Msh3-mediated pathway that leads to expansions. Our model highlights the importance of DNA structure-dependent conformations in modulating MLH function.

genetics↗

Msh2-Msh3 DNA-binding is not sufficient to promote trinucleotide repeat expansions in Saccharomyces cerevisiae

Mismatch repair (MMR) is a highly conserved DNA repair pathway that recognizes mispairs that occur spontaneously during DNA replication and coordinates their repair. In Saccharomyces cerevisiae, Msh2-Msh3 and Msh2-Msh6 initiate MMR by recognizing and binding insertion deletion loops (in/dels) up to [~] 17 nucleotides (nt.) and base-base mispairs, respectively; the two complexes have overlapping specificity for small (1-2 nt.) in/dels. The DNA-binding specificity for the two complexes resides in their respective mispair binding domains (MBDs) and have distinct DNA-binding modes. Msh2-Msh3 also plays a role in promoting CAG/CTG trinucleotide repeat (TNR) expansions, which underlie many neurodegenerative diseases such as Huntingtons Disease and Myotonic Dystrophy Type 1. Models for Msh2-Msh3s role in promoting TNR tracts expansion have invoked its specific DNA-binding activity and predict that the TNR structure alters its DNA binding and downstream activities to block repair. Using a chimeric Msh complex that replaces the MBD of Msh6 with the Msh3 MBD, we demonstrate that Msh2-Msh3 DNA-binding activity is not sufficient to promote TNR expansions. We propose a model for Msh2-Msh3-mediated TNR expansions that requires a fully functional Msh2-Msh3 including DNA binding, coordinated ATP binding and hydrolysis activities and interactions with Mlh complexes that are analogous to those required for MMR. Article SummaryThe mismatch repair (MMR) protein complex Msh2-Msh3 promotes trinucleotide repeat (TNR) expansions that can lead to neurodegenerative diseases, while the Msh2-Msh6 complex does not. We tested the hypothesis that Msh2-Msh3s specific DNA binding activity is sufficient to promote TNR expansions, using a chimeric MSH complex in vivo and in vitro. We found that the Msh2-Msh3-like DNA-binding was not sufficient to promote TNR expansions. Our findings indicate that Msh2-Msh3 plays an active, pathogenic role in promoting TNR expansions beyond simply binding to TNR structures.

genetics↗